Claims
- 1. An optical switch comprising:
a reference mirror that reflects a signal wavelength of light and transmits a reference wavelength of light; a first adjustable mirror array disposed relative to said reference mirror such that a first reference light beam having said reference wavelength is reflected from said first adjustable mirror array to said reference mirror; a second adjustable mirror array disposed relative to said reference mirror such that a second reference light beam having said reference wavelength is reflected from said second adjustable mirror array to said reference mirror; a detector array adjacent to said reference mirror, wherein said detector array:
indicates a first position of said first reference light beam incident on said reference mirror and transmitted through said reference mirror to said detector array, and indicates a second position of said second reference light beam incident on said reference mirror and transmitted through said reference mirror to said detector array; a controller that:
receives said first position and adjusts said first adjustable mirror array so that said first position is moved to a pre-determined location on said reference mirror; and receives said second position and adjusts said second adjustable mirror array so that said second position is moved to said pre-determined location, thereby establishing an optical beam alignment for a signal light beam having said signal wavelength wherein said signal light beam is reflected from said first adjustable mirror array to said reference mirror and is reflected from said reference mirror to said second adjustable mirror array.
- 2. The optical switch of claim 1 wherein said pre-determined location is a unique location where an angle of incidence of said signal light beam from said first adjustable mirror array on said reference mirror is equal to an angle of reflection of said signal light beam from said reference mirror to said second adjustable mirror array when said signal light beam is coincident with said first reference light beam and with said second reference light beam.
- 3. The optical switch of claim 1 further comprising:
at least one input optical fiber; and at least one output optical fiber having an optical path from said at least one input optical fiber to said at least one output optical fiber; said optical path reflecting off said first adjustable mirror array, said reference mirror, and said second adjustable mirror array; and wherein said pre-determined location is a unique location on said reference mirror where an angle of incidence is equal to an angle of reflection for a light beam on said optical path.
- 4. The optical switch of claim 1 wherein said detector array comprises a plurality of charge-coupled devices, said plurality of charge-coupled devices sensing said first position and said second position relative to said detector array.
- 5. The optical switch of claim 1 further comprising a memory wherein said pre-determined location is stored in said memory.
- 6. The optical switch of claim 1 further comprising an optical fiber configured to transmit said reference light beam at said reference wavelength and said signal light beam at said signal wavelength.
- 7. The optical switch of claim 1 wherein:
said reference wavelength is 850 nm; and said signal wavelength is selected from the group consisting of 1550 nm and 1300 nm.
- 8. The optical switch of claim 1 wherein said first adjustable mirror array is identical with said second adjustable mirror array.
- 9. An optical switch comprising:
a reference mirror that reflects a signal wavelength of light and transmits a reference wavelength of light; a first adjustable mirror array disposed relative to said reference mirror such that a first reference light beam having said reference wavelength is reflected from said first adjustable mirror array to said reference mirror; a second adjustable mirror array disposed relative to said reference mirror such that a second reference light beam having said reference wavelength is reflected from said second adjustable mirror array to said reference mirror; at least one input optical fiber; at least one output optical fiber, said at least one input optical fiber and said at least one output optical fiber having an optical path between said at least one input optical fiber and said at least one output optical fiber, said optical path reflecting off said first adjustable mirror array, said reference mirror, and said second adjustable mirror array, wherein a pre-determined location is a unique location on said reference mirror where an angle of incidence is equal to an angle of reflection for said optical path; a detector array adjacent said reference mirror, wherein said detector array:
indicates a first position of said first reference light beam incident on said reference mirror and transmitted through said reference mirror to said detector array, and indicates a second position of said second reference light beam incident on said reference mirror and transmitted through said reference mirror to said detector array; a controller that:
receives said first position and adjusts said first adjustable mirror array so that said first position is moved to said pre-determined location and receives said second position and adjusts said second adjustable mirror array so that said second position is moved to said pre-determined location, thereby establishing an optical beam alignment for a signal light beam having said signal wavelength wherein said signal light beam propagates on said optical path between said at least one input optical fiber and said at least one output optical fiber.
- 10. The optical switch of claim 9 wherein:
said first reference light beam is transmitted through said at least one input optical fiber; and said second reference light beam is transmitted through said at least one output optical fiber.
- 11. The optical switch of claim 9 wherein said detector array comprises a plurality of charge-coupled devices, said plurality of charge-coupled devices sensing said first position and said second position relative to said at least one input optical fiber and said at least one output optical fiber.
- 12. The optical switch of claim 9 wherein said controller further comprises a memory, with said pre-determined location being stored in said memory.
- 13. The optical switch of claim 9 wherein said input optical fiber is configured to transmit said first reference light beam at said reference wavelength and said signal light beam at said signal wavelength.
- 14. The optical switch of claim 9 further comprising:
a second input optical fiber; a second output optical fiber wherein:
said at least one input optical fiber is connected as a working fiber; said second input optical fiber is connected as a protection fiber; said at least one output optical fiber is connected as a working fiber; said second output optical fiber is connected as a protection fiber; and said optical switch is connected for use as a protection switch.
- 15. The optical switch of claim 9 further comprising:
a second input optical fiber; a second output optical fiber wherein:
said at least one input optical fiber is connected as a working fiber; said second input optical fiber is connected as an add fiber; said at least one output optical fiber is connected as a working fiber; said second output optical fiber is connected as a drop fiber; and said optical switch is connected for use as an add/drop module.
- 16. The optical switch of claim 9 wherein:
said at least one input optical fiber is connected as a working fiber; said at least one output optical fiber is connected as a working fiber; and said optical switch is connected for use as a non-blocking cross-connect switch.
- 17. A 3-dimensional optical cross-connect switch comprising:
a reference mirror that reflects a signal wavelength of light and transmits a reference wavelength of light; a first adjustable mirror array disposed relative to said reference mirror such that a first reference light beam having said reference wavelength is reflected from said first adjustable mirror array to said reference mirror; a second adjustable mirror array disposed relative to said reference mirror such that a second reference light beam having said reference wavelength is reflected from said second adjustable mirror array to said reference mirror; an input fiber array comprising at least one input optical fiber, said at least one input optical fiber transmitting said first reference light beam at said reference wavelength; an output fiber array comprising at least one output optical fiber, said at least one output optical fiber transmitting said second reference light beam at said reference wavelength; said at least one input optical fiber and said at least one output optical fiber having an optical path between said at least one input optical fiber and said at least one output optical fiber; said optical path reflecting off said first adjustable mirror array, said reference mirror, and said second adjustable mirror array, wherein:
a pre-determined location is a unique location on said reference mirror where an angle of incidence is equal to an angle of reflection for said optical path; a detector array adjacent said reference mirror, said detector array comprising a plurality of charge-coupled devices, said plurality of charge-coupled devices sensing a first position of said first reference light beam incident on said reference mirror and transmitted through said reference mirror to said detector array and said plurality of charge-coupled devices sensing a second position of said second reference light beam incident on said reference mirror and transmitted through said reference mirror to said detector array, wherein said detector array indicates said first position and said second position relative to said at least one input optical fiber and said at least one output optical fiber; a controller comprising a memory, said pre-determined location being stored in said memory, wherein said controller:
receives said first position and adjusts said first adjustable mirror array so that said first position is moved to said pre-determined location and receives said second position and adjusts said second adjustable mirror array so that said second position is moved to said pre-determined location, thereby establishing an optical beam alignment for a signal light beam having said signal wavelength wherein said signal light beam is transmitted from said at least one input optical fiber at said signal wavelength on said optical path to said at least one output optical fiber.
- 18. The 3-dimensional optical cross-connect switch of claim 17 wherein:
said input fiber array comprises working optical fibers and protection optical fibers; said output fiber array comprises working optical fibers and protection optical fibers; and said 3-dimensional optical cross-connect switch is connected for use as a protection switch.
- 19. The 3-dimensional optical cross-connect switch of claim 17 wherein:
said input fiber array comprises working optical fibers and add optical fibers; said output fiber array comprises working optical fibers and drop optical fibers; and said 3-dimensional optical cross-connect switch is connected for use as an add/drop module.
- 20. The 3-dimensional optical cross-connect of claim 17 wherein:
said input fiber array comprises working optical fibers; said output fiber array comprises working optical fibers; and said 3-dimensional optical cross-connect switch is connected for use as a non-blocking cross-connect switch.
- 21. An optical switching network comprising:
a plurality of nodes wherein at least one of said plurality of nodes comprises an optical switch; a plurality of links wherein:
each of said plurality of links comprises at least one optical fiber, each of said plurality of links optically connects two of said plurality of nodes, at least one of said plurality of links includes an input optical fiber connected to said optical switch, and at least one of said plurality of links includes an output optical fiber connected to said optical switch; wherein said optical switch comprises:
a reference mirror that reflects a signal wavelength of light and transmits a reference wavelength of light; a first adjustable mirror array disposed relative to said reference mirror such that a first reference light beam having said reference wavelength transmitted through said input optical fiber is reflected from said first adjustable mirror array to said reference mirror; a second adjustable mirror array disposed relative to said reference mirror such that a second reference light beam having said reference wavelength transmitted through said output optical fiber is reflected from said second adjustable mirror array to said reference mirror; a detector array adjacent said reference mirror, wherein said detector array:
indicates a first position of said first reference light beam incident on said reference mirror and transmitted through said mirror to said detector array, and indicates a second position of said second reference light beam incident on said reference mirror and transmitted through said reference mirror to said detector array; a controller comprising a memory, with a pre-determined location being stored in said memory, wherein said controller:
receives said first position and adjusts said first adjustable mirror array so that said first position is moved to said pre-determined location on said reference mirror and receives said second position and adjusts said second adjustable mirror array so that said second position is moved to said pre-determined location, thereby establishing an optical beam alignment for a signal light beam having said signal wavelength wherein said signal light beam is transmitted through said input optical fiber, reflected from said first adjustable mirror array to said reference mirror, reflected from said reference mirror to said second adjustable mirror array, and transmitted through said output optical fiber.
- 22. The optical switching network of claim 21 wherein:
said input optical fiber and said output optical fiber have an optical path from said input optical fiber to said output optical fiber; and said optical path reflecting off said first adjustable mirror array, said reference mirror, and said second adjustable mirror array, wherein:
said pre-determined location is a unique location on said reference mirror where an angle of incidence is equal to an angle of reflection for a light beam on said optical path.
- 23. The optical switching network of claim 21 further comprising:
a second input optical fiber connected to said optical switch; a second output optical fiber connected to said optical switch wherein:
said input optical fiber is connected as a working fiber; said second input optical fiber is connected as a protection fiber; said output optical fiber is connected as a working fiber; said second output optical fiber is connected as a protection fiber; and said optical switch is connected for use as a protection switch.
- 24. The optical switching network of claim 21 further comprising:
a second input optical fiber connected to said optical switch; a second output optical fiber connected to said optical switch wherein:
said input optical fiber is connected as a working fiber; said second input optical fiber is connected as an add fiber; said output optical fiber is connected as a working fiber; said second output optical fiber is connected as a drop fiber; and said optical switch is connected for use as an add/drop module.
- 25. The optical switching network of claim 21 wherein
said input optical fiber is connected as a working fiber; said output optical fiber is connected as a working fiber; and said optical switch is connected for use as a non-blocking cross-connect switch.
- 26. A method for optical beam alignment comprising steps of:
directing a first reference light beam from a first optical fiber to be incident on a reference mirror at a first position; directing a second reference light beam from a second optical fiber to be incident on said reference mirror at a second position; and forming an aligned optical path by moving said first position and said second position to a pre-determined location on said reference mirror where an angle of incidence of said first reference light beam on said reference mirror is equal to an angle of incidence of said second reference light beam on said reference mirror.
- 27. The method of claim 26 further comprising a step of sensing said first position and said second position using a detector array.
- 28. The method of claim 26 further comprising steps of:
indicating with a detector array said first position and said second position to a controller; and moving said first position and said second position to said pre-determined location using feedback control between said detector array and said controller.
- 29. The method of claim 26 wherein moving said first position comprises:
reflecting said first reference light beam from a first adjustable mirror; and adjusting said first adjustable mirror using feedback control.
- 30. The method of claim 26 wherein moving said second position comprises:
reflecting said second reference light beam from a second adjustable mirror; and adjusting said second adjustable mirror using feedback control.
- 31. The method of claim 26 further comprising a step of:
directing a signal light beam between said first optical fiber and said second optical fiber along said aligned optical path.
- 32. The method of claim 26 wherein:
said signal light beam has a different wavelength from said first reference light beam; and said signal light beam has a different wavelength from said second reference light beam.
- 33. A method for optically switching light beams in an optical switch, comprising steps of:
selecting an input optical fiber and an output optical fiber to be optically connected to each other; inserting a first reference light beam in said input optical fiber to be incident on a reference mirror at a first position; inserting a second reference light beam in said output optical fiber to be incident on said reference mirror at a second position; and adjusting said first position and said second position to a pre-determined location on said reference mirror where an angle of incidence of said first reference light beam on said reference mirror is equal to an angle of incidence of said second reference light beam on said reference mirror, thereby forming an aligned optical path between said input optical fiber and said output optical fiber.
- 34. The method of claim 33 further comprising a step of:
transmitting a signal light beam between said input optical fiber and said output optical fiber along said aligned optical path, thereby optically connecting said input optical fiber with said output optical fiber.
- 35. The method of claim 33 wherein said adjusting step comprises:
sensing said first position and said second position with a detector array and indicating said first position and said second position to a controller; and using feedback between said detector array and said controller to move said first position and said second position to said pre-determined location.
- 36. The method of claim 33 further comprising a step of:
connecting said optical switch in a switching network comprising a plurality of working fibers and a plurality of protection fibers, said optical switch connected for use as a protection switch; wherein said selecting step comprises:
selecting said input optical fiber from one of said plurality of working fibers and said plurality of protection fibers and selecting said output optical fiber from one of said plurality of working fibers and said plurality of protection fibers.
- 37. The method of claim 33 further comprising a step of:
connecting said optical switch in a switching network comprising a plurality of working fibers, a plurality of add fibers, and a plurality of drop fibers, said optical switch connected for use as an add/drop module; wherein said selecting step comprises:
selecting said input optical fiber from one of said plurality of working fibers and said plurality of add fibers and selecting said output optical fiber from one of said plurality of working fibers and said plurality of drop fibers.
- 38. The method of claim 33 further comprising a step of:
connecting said optical switch in a switching network comprising a plurality of working fibers, said optical switch connected for use as a non-blocking cross-connect switch; wherein said selecting step comprises:
selecting said input optical fiber from said plurality of working fibers and selecting said output optical fiber from said plurality of working fibers.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Application No. 60/413,283, filed Sep. 24, 2002.
Provisional Applications (1)
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Number |
Date |
Country |
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60413283 |
Sep 2002 |
US |